材料科学
发射率
辐射冷却
热光电伏打
光电子学
辐射传输
红外线的
光子学
热辐射
热的
热致变色
红外窗口
被动冷却
相变
工作(物理)
吸收(声学)
波长
低发射率
光学
辐射冷却
相(物质)
主动冷却
热导率
辐射
黑体辐射
电介质
热阻
作者
Haoqiang Pang,Liangyu Lu,Songtao Deng
标识
DOI:10.1142/s2047684125500411
摘要
Radiative cooling for buildings, which leverages long-wave infrared (LWIR) toward the sky, offers innovative solutions for passive thermal regulation. However, traditional passive radiative cooling systems, characterized by static thermal emissivity ([Formula: see text], fail to automatically regulate LWIR thermal radiation across varying hot/cold seasons, exacerbating extra cooling/heating costs. In this study, we developed a photonic structure incorporating thermochromic vanadium dioxide and germanium. This structure can intelligently regulate [Formula: see text] based on ambient temperature, turning “on” and “off” radiative cooling in the atmospheric transparency window due to the metal-insulator transition of VO 2 . We crafted a meta-surface consisting of an alternating three-layered dielectric/metal of VO 2 /Ge composition using the principles of slow-light waveguide and Fabry–Perot resonators. This design achieves near-unity absorption of unpolarized light, offering a more efficient cooling effect with a simplified structure. The [Formula: see text] is adjusted at the critical phase transition temperature within the 8–13[Formula: see text][Formula: see text]m wavelength range. Notably, [Formula: see text] can reach up to 0.998 above the critical phase transition temperature and drop to as low as 0.1 below it. Besides, the net cooling power of a metallic VO 2 -based structure can attain 127.52[Formula: see text]W/m 2 , which is 3–4 times greater than that of an insulating VO 2 -based system. This work provides a promising prospect for temperature-adaptive radiative cooling via regulating [Formula: see text] with a photonic structure for all-season applications.
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